Abstract
Gilbert damping characterizes the dissipation of magnetization dynamics and is crucial for controlling both magnetization switching and magnon propagation. This work systematically investigates the influences of substrate temperature (Ts = 25 −500 ℃) and measurement temperature (90 −295 K) on the static and dynamic magnetic properties of Co50Pt50 (CoPt) films grown on the MgO (111) substrate. When Ts exceeds 200 °C, the magnetic anisotropy transitions from in-plane to perpendicular, with the largest uniaxial anisotropy field occurring near 300 °C. The Gilbert damping exhibits a nonmonotonic dependence on Ts, arising from competition between intrinsic spin–orbit-coupling–related relaxation and extrinsic damping associated with increased surface roughness at high Ts. Temperature-dependent TR-MOKE measurements further reveal distinct behaviors: the RT-grown CoPt film with in-plane anisotropy shows a monotonic decrease in damping with increasing measurement temperature, consistent with conductivity-like intrinsic behavior. In contrast, the film grown at 500 °C with perpendicular anisotropy displays a pronounced damping peak near 150 K, followed by a reduction attributed to the suppression of two-magnon–scattering-driven extrinsic damping at low temperatures. These results deepen the understanding of damping mechanisms in magnetic systems with strong spin-orbit coupling and provide valuable guidance for designing low-temperature spintronic devices.
| Original language | English |
|---|---|
| Article number | 187532 |
| Journal | Journal of Alloys and Compounds |
| Volume | 1061 |
| DOIs | |
| State | Published - 5 Apr 2026 |
| Externally published | Yes |
Keywords
- Gilbert damping
- Perpendicular magnetic anisotropy
- Temperature dependence
- Ultrafast spin dynamics
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